Interfacial Compatibilization into PLA/Mg Composites for Improved In Vitro Bioactivity and Stem Cell Adhesion

被引:16
作者
Ben Abdeljawad, Meriam [1 ]
Carette, Xavier [1 ]
Argentati, Chiara [2 ]
Martino, Sabata [2 ]
Gonon, Maurice-Francois [3 ]
Odent, Jeremy [1 ]
Morena, Francesco [2 ]
Mincheva, Rosica [1 ]
Raquez, Jean-Marie [1 ]
机构
[1] Univ Mons, Lab Polymer & Composite Mat LPCM, Ctr Innovat & Res Mat & Polymers CIRMAP, 23 Pl Parc, B-7000 Mons, Belgium
[2] Univ Perugia, Dept Chem Biol & Biotechnol, I-06123 Perugia, Italy
[3] Univ Mons, Dept Mat Sci, 20 Pl Parc, B-7000 Mons, Belgium
关键词
interfacial adhesion; amphiphilic copolymer; bioactivity; stem cells; biomaterial interaction and bone implant; HYDROLYTIC DEGRADATION; CALCIUM-PHOSPHATE; BONE; NANOCOMPOSITES; SCAFFOLDS; MG; BEHAVIOR; PEG; POLYLACTIDE; RELEVANCE;
D O I
10.3390/molecules26195944
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
The present work highlights the crucial role of the interfacial compatibilization on the design of polylactic acid (PLA)/Magnesium (Mg) composites for bone regeneration applications. In this regard, an amphiphilic poly(ethylene oxide-b-L,L-lactide) diblock copolymer with predefined composition was synthesised and used as a new interface to provide physical interactions between the metallic filler and the biopolymer matrix. This strategy allowed (i) overcoming the PLA/Mg interfacial adhesion weakness and (ii) modulating the composite hydrophilicity, bioactivity and biological behaviour. First, a full study of the influence of the copolymer incorporation on the morphological, wettability, thermal, thermo-mechanical and mechanical properties of PLA/Mg was investigated. Subsequently, the bioactivity was assessed during an in vitro degradation in simulated body fluid (SBF). Finally, biological studies with stem cells were carried out. The results showed an increase of the interfacial adhesion by the formation of a new interphase between the hydrophobic PLA matrix and the hydrophilic Mg filler. This interface stabilization was confirmed by a decrease in the damping factor (tan delta) following the copolymer addition. The latter also proves the beneficial effect of the composite hydrophilicity by selective surface localization of the hydrophilic PEO leading to a significant increase in the protein adsorption. Furthermore, hydroxyapatite was formed in bulk after 8 weeks of immersion in the SBF, suggesting that the bioactivity will be noticeably improved by the addition of the diblock copolymer. This ceramic could react as a natural bonding junction between the designed implant and the fractured bone during osteoregeneration. On the other hand, a slight decrease of the composite mechanical performances was noted.
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页数:25
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